• DocumentCode
    1054830
  • Title

    Efficient detection and size determination of crystal originated "particles" (COPs) on silicon wafer surface using optical scattering technique integrated to an atomic force microscope

  • Author

    Lee, Wah-Pheng ; Yow, Ho-Kwang ; Tou, Teck-Yong

  • Author_Institution
    S.E.H (M) Sdn. Bhd, Selangor, Malaysia
  • Volume
    17
  • Issue
    3
  • fYear
    2004
  • Firstpage
    422
  • Lastpage
    431
  • Abstract
    Dark-field optical scattering technique is adopted in a surface defect detection system (DDS) to allow an efficient and cost-effective detection and size determination of the crystal originated "particles" (COPs) on polished silicon wafer surface before atomic force microscope (AFM) measurement. The effects of laser beam power, beam angle, beam profile, wafer rotation and intensified CCD (ICCD) camera exposure time on the scattered light diameter of preselected COPs were investigated. An AFM was integrated to the DDS through coordinate linkage to confirm the diagonal length, shape and type of the COPs detected. A correlation curve between the scattered light diameters and the actual diagonal lengths of the COPs was then obtained. Once the correlation is established, the size of COP on any wafer surface can be estimated simply by referring to the correlation curve without constant reference to the AFM. In this study, the detection of a single-type COP with a diagonal length of 60 nm was demonstrated.
  • Keywords
    CCD image sensors; atomic force microscopy; boron; crystal defects; crystal microstructure; laser beam effects; particle size measurement; 60 nm; AFM measurement; B-Si; atomic force microscopy; beam angle effect; beam profile; cost effective detection; crystal originated particles; dark field optical scattering technique; intensified CCD camera exposure time; laser beam power effect; scattered light diameter-actual diagonal length correlation curve; silicon wafer surface; size determination; surface defect detection system; wafer rotation; Atom optics; Atomic beams; Atomic force microscopy; Atomic measurements; Force measurement; Laser beams; Light scattering; Optical microscopy; Optical scattering; Silicon; Atomic force microscope; crystal originated “particle”; defect control; optical scattering; silicon wafer;
  • fLanguage
    English
  • Journal_Title
    Semiconductor Manufacturing, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0894-6507
  • Type

    jour

  • DOI
    10.1109/TSM.2004.831531
  • Filename
    1321140